Dual‐Wavelength Comparative Imaging Based on a Novel NIR‐II/IIb Emissive Rare Earth‐Doped Nanoparticle

Author:

Liu Ruiqi1,Qiu Yihua1,Wu Fengxia1,Duan Shuang1,Suo Yongkuan1,Chang Baisong2,Ren Ying3,Tian Mei4,Liu Hongguang1ORCID,Cheng Zhen56

Affiliation:

1. Institute of Molecular Medicine College of Life and Health Sciences Northeastern University 110000 Shenyang China

2. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology 430000 Wuhan China

3. Department of Radiology Shengjing Hospital of China Medical University 110004 Shenyang China

4. Human Phenome Institute Fudan University 201203 Shanghai China

5. State Key Laboratory of Drug Research Molecular Imaging Center Shanghai Institute of Materia Medica Chinese Academy of Sciences 201203 Shanghai China

6. Shandong Laboratory of Yantai Drug Discovery Bohai Rim Advanced Research Institute for Drug Discovery Yantai Shandong 264117 China

Abstract

AbstractThe second near‐infrared biological window two (NIR‐II, 1000–1700 nm) imaging has made remarkable achievements in fluorescence imaging of diseases. Here, this work takes advantage of the rich spectral properties of rare‐earth doped nanoparticles (RENPs) and their capability to present multiple emission peaks in different luminescence regions simultaneously; novel RENPs are synthesized that have emission peaks in the NIR‐II1000nm (1000–1300 nm) region and enhanced emission in the NIR‐IIb (1500–1700 nm) window and are named as NEU‐RENPs. These RENPs with new compositions enable a fair comparison to evaluate their imaging performance in NIR‐II1000nm and NIR‐IIb regions under the same conditions. The imaging abilities of the resulted nanoparticles in NIR‐II1000 nm and NIR‐IIb regions are investigated systematically for local blood vessels, tumor vessels, acute inflammatory vessels, arterial thrombosis, cerebrovascular inflammation, and brain injury models. The results indicate that imaging of NIR‐IIb shows higher resolution and sensitivity than that of NIR‐II1000nm, and it has a stronger ability to accurately distinguish normal and pathological tissues. Interestingly, the fuzzy image of NIR‐II1000nm reveals more information about the background structure of the target, which is difficult to be achieved in NIR‐IIb imaging. The results prove NEU‐RENPs based NIR‐IIb imaging is preferable for biomedical applications.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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